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1-D Simulation Study of Divided Exhaust Period for a Highly Downsized Turbocharged SI Engine - Scavenge Valve Optimization

机译:高尺寸涡轮增压Si发动机 - 清除阀优化分割排气时段的1-D仿真研究

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摘要

Fuel efficiency and torque performance are two major challenges for highly downsized turbocharged engines. However, the inherent characteristics of the turbocharged SI engine such as negative PMEP, knock sensitivity and poor transient performance significantly limit its maximum potential. Conventional ways of improving the problems above normally concentrate solely on the engine side or turbocharger side leaving the exhaust manifold in between ignored. This paper investigates this neglected area by highlighting a novel means of gas exchange process. Divided Exhaust Period (DEP) is an alternative way of accomplishing the gas exchange process in turbocharged engines. The DEP concept engine features two exhaust valves but with separated function. The blow-down valve acts like a traditional turbocharged exhaust valve to evacuate the first portion of the exhaust gas to the turbine. While the scavenge valve feeding the latter portion of the exhaust gas directly into the low resistant exhaust pipe behaves similarly to valves in a naturally aspirated engine. By combining the characteristics of both turbocharged and naturally aspirated engines, high backpressure between the turbine inlet and the exhaust port is maintained in the blowdown phase while significant reduction of the backpressure could be achieved in the latter displacement phase. This is directly beneficial for pumping work and residual gas scavenging. Combustion phasing & stability and turbocharger efficiency could also benefit from such concept. This simulation study was carried out using a validated 1D model of a highly downsized SI engine. Two degrees of freedom including the lift and the duration of the scavenge valve were optimized to achieve minimum BSFC. The potential for higher attainable BMEP was also briefly investigated at low engine speed.
机译:燃油效率和扭矩性能是高度缩小的涡轮增压发动机的两个主要挑战。然而,涡轮增压的涡轮增压发动机如负PMEP,敲击敏感度和差的瞬态性能差的固有特性显着限制了其最大潜力。改善上面问题的常规方式通常仅在发动机侧或涡轮增压器侧忽略在发动机侧或涡轮增压器侧离开排气歧管。本文通过突出新的气体交换过程来调查这个被忽视的区域。分开的排气时段(DEP)是在涡轮增压发动机中实现气体交换过程的替代方法。 DEP概念发动机具有两个排气阀,但具有分离功能。排污阀像传统的涡轮增压排气阀一样,以将排气的第一部分蒸发到涡轮机上。虽然将后一部分的清除阀直接进入低抗性排气管的虽然在天然吸气发动机中的阀门的行为类似。通过组合涡轮增压和天然吸气发动机的特性,涡轮机入口和排气口之间的高背压保持在排污阶段,同时可以在后一位移阶段实现背压的显着降低。这直接有利于泵送工作和剩余气体清除。燃烧阶段和稳定性和涡轮增压器效率也可能受益于这些概念。使用高度缩小的SI发动机的验证的1D模型进行该仿真研究。优化包括升力和清除阀的持续时间的两度自由度以实现最小BSFC。还在低发动机速度下简要研究了更高可获得的BMEP的潜力。

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